Chen Nuan, Tian Lingling, He Liumin, Ramakrishna Seeram
Center for Nanofibers and Nanotechnology, Department of Mechanical Engineering, Faculty of Engineering, National University of Singapore, Singapore, Singapore.
Department of Biomedical Engineering, College of Life Science and Technology, Jinan University, Guangzhou, Guangdong Province, China.
Neural Regen Res. 2016 Sep;11(9):1372-1374. doi: 10.4103/1673-5374.191195.
Diseases and disorders associated with nervous system such as injuries by trauma and neurodegeneration are shown to be one of the most serious problems in medicine, requiring innovative strategies to trigger and enhance the nerve regeneration. Tissue engineering aims to provide a highly biomimetic environment by using a combination of cells, materials and suitable biological cues, by which the lost body part may be regenerated or even fully rebuilt. Electrospinning, being able to produce extracellular matrix (ECM)-like nanostructures with great flexibility in design and choice of materials, have demonstrated their great potential for fabrication of nerve tissue engineered scaffolds. The review here begins with a brief description of the anatomy of native nervous system, which provides basic knowledge and ideas for the design of nerve tissue scaffolds, followed by five main parts in the design of electrospun nerve tissue engineered scaffolds including materials selection, structural design, bioreactor, functionalization and cellular support. Performances of biomimetic electrospun nanofibrous nerve implant devices are also reviewed. Finally, future directions for advanced electrospun nerve tissue engineered scaffolds are discussed.
与神经系统相关的疾病和紊乱,如创伤性损伤和神经退行性变,被证明是医学中最严重的问题之一,需要创新策略来触发和增强神经再生。组织工程旨在通过结合细胞、材料和合适的生物信号,提供一个高度仿生的环境,借此使缺失的身体部位得以再生甚至完全重建。静电纺丝能够生产出具有类似细胞外基质(ECM)纳米结构,在材料设计和选择上具有极大的灵活性,已证明其在制造神经组织工程支架方面具有巨大潜力。本文综述首先简要描述天然神经系统的解剖结构,为神经组织支架的设计提供基础知识和思路,随后阐述静电纺丝神经组织工程支架设计中的五个主要部分,包括材料选择、结构设计、生物反应器、功能化和细胞支持。还综述了仿生静电纺丝纳米纤维神经植入装置的性能。最后,讨论了先进静电纺丝神经组织工程支架的未来发展方向。